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The Time Projection Chamber (TPC), a large gaseous detector, is the main particle identification device of the ALICE experiment at the CERN LHC. The desired performance of the TPC defines the requirements for the gas mixture used in the detector. The active volume was filled with either Ne-CO2 (90-10) or Ne-CO2-N2 (90-10-5) during the first LHC running period. For LHC Run 2 the gas mixture is changed to Ar-CO2. Calculations of relevant gas properties are performed for Ar-based gas mixtures and compared to Ne-based gas mixtures to identify the most suitable Ar mixture. The drift velocity of ions in Ar is lower than in Ne. The closing time of the gating grid has to be adjusted accordingly to avoid drift field distortions due to back-drifting ions. The drift times of ions in the TPC readout chambers are calculated for the respective gas mixtures to determine the time to collect all ions from the amplification region. For LHC Run 3 the TPC readout chambers will be upgraded. The Multiwire Proportional Chambers (MWPCs) will be replaced by readout chambers based on Gas Electron Multipliers (GEMs) which are operated in continuous mode. As a consequence an ion backflow of the order of 1% causes significant space-charge distortions in the TPC drift volume. Similar distortions are expected in data taken specifically for the study of space-charge effects at the end of Run 1. The gating grid of the MWPCs is operated in the open state allowing the ions from the amplification region to enter the drift volume. The magnitude of the distortions in this data is measured and compared to the expectations for the TPC upgrade and results from current simulations.
Heavy-ion collisions at ultra-relativistic energies allow access to the Quark-Gluon Plasma, the deconfined phase of the strong interaction, a state which is believed to have existed fractions of seconds after the big bang. Two-particle correlations at small relative momenta, and particularly their dependence on pair transverse mass, are distinctly sensitive to the reaction dynamics of the fireball created in heavy-ion collisions.
Being the heaviest system to extract a size of the particle emitting source, proton-lambda correlations extend the studied range in pair transverse mass and are therefore well suited to explore the dynamical behavior of the matter created in Pb-Pb collisions at the Large Hadron Collider. The centrality dependence of the extracted source radii affirms the expectations of a larger source for more central collisions. Source radii were attained over a span of more than 0.9 GeV/c2 in mean pair transverse mass with a source radius extracted for a mean transverse mass as high as 2.18 GeV/c2. The source radii decrease with increasing pair transverse mass, as expected in a hydrodynamical picture. The comparison with radii obtained from other particle species exhibits the clear breaking of an elsewhere proposed scaling behavior of source radii with mean pair transverse mass for all particle species.
Gamma-gamma correlations possibly allow to look past the barrier of kinetic freeze-out. Additionally, they bear the potential to solve the puzzling observation in heavy-ion collisions of an excess of photons with a large temperature-like inverse slope parameter on the one hand and an elliptic flow coefficient of photons comparable to the one of hadrons on the other hand. A striking signal in the two-photon correlation function is observed; however it seems likely to not be of quantum statistical origin. A path for further studies is laid out.
Measurements of the transverse momentum (pt) spectra of K0 s and Λ(Λ̄) in Pb–Pb and pp collisions at √sNN = 2.76TeV with the ALICE detector at the LHC at CERN up to pt = 20GeV/c and pt = 16GeV/c, respectively, are presented in this thesis. In addition, the particle rapidity densities at mid-rapidity and nuclear modification factors of K0 s and Λ(Λ̄) are shown and discussed. The analysis was performed using the Pb–Pb data set from 2010 and the pp data set from 2011. For the identification of K0 s and Λ(Λ̄), the on-the-fly V0 finder was employed on tracking information from the TPC and ITS detectors. The Λ and Λ̄ spectra were feed-down corrected using the measured published Ξ− spectra as input.
Regarding the rapidity density at mid-rapidity, a suppression of the strange particle production in pp as compared to Pb–Pb collisions is observed at all centralities, whereas the production per pion rapidity density stays constant as a function of dNch/dη including both systems. Furthermore, the relative increase of the individual particle species in pp and AA collisions is compatible for non- and single-strange particles when going from RHIC (√sNN = 0.2TeV) to LHC energies. On the other hand, in case of multi-strange baryons, a stronger increase in the particle production in pp is seen. The Λ̄ and Λ production in Pb–Pb and pp collisions was found to be equal. Concerning the nuclear modification factors, at lower pt (pt <5GeV/c), an enhancement of the RAA of Λ with respect to that of K0 s and charged hadrons is observed. This baryon-to-meson enhancement appearing in central Pb–Pb collisions at RHIC and LHC is currently explained by the interplay of the radial flow and recombination as the dominant particle production mechanism in this pt sector. The effect of radial flow is thus also seen in the low and intermediate pt region of RAA, where a mass hierarchy is discovered among the baryons and mesons, respectively, with the heaviest particle being least suppressed. When comparing the results from RHIC and LHC, the RCP is found to be similar at low-to-intermediate pt, while a significantly smaller RAA of K0 s and Λ in central and peripheral events at the LHC is observed in this pt region as compared to the RHIC results. This can be attributed to the larger radial flow in AA collisions and to the harder spectra at the LHC. At high pt (pt > 8GeV/c), a strong suppression in central Pb–Pb collisions with respect to pp collisions is found for K0 s and Λ(Λ̄). A significant high-pt suppression of these hadrons is also observed in the ratio of central-to-peripheral collisions. The nuclear modification of K0 s and Λ(Λ̄) is compatible with the modification of charged hadrons at
high pt. The calculations with the transport model BAMPS agree with these results suggesting a similar energy loss for all light quarks, i.e. u, d and s. Moreover, a compatible suppression for c-quarks appears in the ALICE measurements via the D meson RAA as well as in the BAMPS calculations, which hints to a flavour-independent suppression if light- and c-quarks are regarded. Within this consideration, no indication for a medium-modified fragmentation is found yet.
To summarize, for the particle production in Pb–Pb collisions at the LHC relative to pp neither at lower pt (rapidity density) nor at higher pt (nuclear modification factor) a significant difference of K0 s and Λ(Λ̄) carrying strangeness to hadrons made of u- and d-quarks was found.
Recent STAR data for the directed flow of protons, antiprotons and charged pions obtained within the beam energy scan program are analyzed within the Parton-Hadron-String-Dynamics (PHSD/HSD) transport models. Both versions of the kinetic approach are used to clarify the role of partonic degrees of freedom. The PHSD results, simulating a partonic phase and its coexistence with a hadronic one, are roughly consistent with the STAR data. Generally, the semi-qualitative agreement between the measured data and model results supports the idea of a crossover type of quark-hadron transition which softens the nuclear EoS but shows no indication of a first-order phase transition. Furthermore, the directed flow of kaons and antikaons is evaluated in the PHSD/HSD approachesfrom √sNN ≈ 3 - 200 GeV which shows a high sensitivity to hadronic potentials in the FAIR/NICA energy regime √sNN ≤ 8 GeV.
Within this thesis, the mechanical integration of the Micro Vertex Detector (MVD) of the Compressed Baryonic Matter (CBM) experiment is developed. The CBM experiment, which is being set up at the future FAIR facility, aims to investigate the phase diagram of strongly interacting matter in the regime of high net-baryon densities and moderate temperatures. Heavy-ion collisions at beam energies in the range of 2 to 45 AGeV, complemented by results from elementary reactions, will allow access to these conditions. The experiments conducted at LHC (CERN, Switzerland) and at RHIC (BNL, USA = does not apply within the Beam Energy Scan program) so far focus on the investigation of the phase diagram in the regime of high temperatures and vanishing net-baryon densities. The high beam intensities provided by FAIR will enable CBM to focus its experimental program on systematical studies of rare particles. Among other particle species, open charm-carrying particles are one of the most promising observables to investigate the medium created in heavy-ion collisions since their charm quarks are exposed to the medium and traverse its whole evolution. The fact that the decay particles of these rare observables are also produced abundantly in direct processes in heavy-ion collisions results in a huge combinatorial background which attributes specific requirements to the detector systems. The call for a high interaction rate leads to a cutting-edge detector system which provides an excellent spatial resolution, thin detector stations and the capability to cope with the induced radiation as well as the high rate of traversing particles and the resulting track density. The required demands are to be implemented by the MVD which will be equipped with four planar stations positioned at 50, 100, 150 and 200 mm downstream the target. The geometrical acceptance, which has to be covered with charge-sensitive material, is defined according to the requirements of CBM in the polar angle range of [2.5°; 25°]. The MVD stations have to contribute as little as possible to the overall material budget. The expected beam intensity and the vicinity close to the target require silicon detectors that provide a hardness against non-ionizing radiation of more than 10^13 n_eq/cm² and against ionizing radiation of more than 1 Mrad. In addition, the read-out time of the sensors has to be as short as possible to avoid potential ambiguities in the particle tracking caused by the pile-up of hits having emerged from different collisions. For the time being, Monolithic Active Pixel Sensors (MAPS) offer the optimal choice of technology required to address the physics program of CBM with respect to the spectroscopy of open charm and di-electrons. The geometrical properties of these sensors define the layout of the detector. To limit the multiple scattering of the produced particles inside the geometrical acceptance, the sensors and the MVD have to operate in a moderate vacuum. The sensors are thinned down to a thickness of 50 µm and, to achieve a maximum polar angle coverage, they are glued onto both sides of dedicated thin carriers. These carriers, which are made of highly thermally conductive materials such as CVD diamond or encapsulated TPG, allow efficient extraction of the power produced in the sensors. This enables their operation at temperatures well below 0 °C as suggested by corresponding radiation hardness studies. Dedicated actively cooled aluminum-based heat sinks are positioned outside of the acceptance to dissipate the heat produced by the sensors and the front-end electronics. The design of the MVD, including the realistic thicknesses of the integrated materials, has been developed and refined in the context of this thesis. It has been transformed into a unique software model which is used to simulate and further optimize the mechanical and thermal properties of the MVD, as well as in sophisticated physics simulations. The model allowed evaluation of the material budget of each individual MVD station in its geometrical acceptance. The calculated averaged material budget values stay well below the material budget target values demanded by the physics cases. The thermal management of the MVD has been simulated on the level of a quadrant of each MVD station – four identically constructed quadrants are forming an MVD station – taking into account material properties of the sensors, the glue and the sensor carrier. The temperature gradients across the pixels of a given sensor area in the direction of the rows and columns were found to be in an acceptable range of below 5 K. A temperature difference between the thermal interface area and the maximum sensor temperature of dT = 5 K on the first and a value of dT = 40 K on the fourth MVD station has been thermally simulated assuming a sensor power dissipation of 0.35 W/cm², highlighting the need to optimize the thermal interface between the involved materials as well as the power dissipation of the sensors. The feasibility of several key aspects required for the construction phase of the MVD has been investigated within the MVD Prototype project. The construction of the MVD Prototype allowed evaluation, testing and validation of the handling and the double-sided integration of ultra-thin sensors – the required working steps for their integration have been specified, evaluated and successfully established – as well as their operation in the laboratory and during a concluding in-beam test using high-energetic pions provided by the CERN-SPS. The thermal characterization of the MVD Prototype during its operation – in a temperature range from [5 °C; 25 °C], not in vacuum – confirmed the corresponding thermal simulations conducted during its design phase and substantiated the results of the thermal simulations for the design of the MVD. The aim of a material budget value of only x/X_0 ~ 0.3% for the MVD Prototype has been accomplished. Analyzing the in-beam data, the nominal sensor performance parameters were successfully reproduced, demonstrating that the proposed integration process does not impair the sensors’ performance. Moreover, no evidence of potential impact on the sensors’ performance arising from mechanical weaknesses of the MVD Prototype mechanics has been found within the analyzed data. Based on the MVD Prototype and the simulations of the material budget as well as the thermal management, this thesis evaluated the work packages, procedures and quality assurance parameters needed to set up the starting version of the MVD and addressed open questions as well as critical procedures to be studied prior to the production phase of the detector, emphasizing the evaluation of the cooling concept in vacuum and the integration of sensors in ladder structures on both sides of the quadrants of the MVD stations.
In the initial stage of relativistic heavy-ion collisions, strong magnetic fields appear due to the large velocity of the colliding charges. The evolution of these fields appears as a novel and intriguing feature in the fluid-dynamical description of heavy-ion collisions. In this work, we study analytically the one-dimensional, longitudinally boost-invariant motion of an ideal fluid in the presence of a transverse magnetic field. Interestingly, we find that, in the limit of ideal magnetohydrodynamics, i.e., for infinite conductivity, and irrespective of the strength of the initial magnetization, the decay of the fluid energy density e with proper time τ is the same as for the time-honoured “Bjorken flow” without magnetic field. Furthermore, when the magnetic field is assumed to decay , where a is an arbitrary number, two classes of analytic solutions can be found depending on whether a is larger or smaller than one. In summary, the analytic solutions presented here highlight that the Bjorken flow is far more general than formerly thought. These solutions can serve both to gain insight on the dynamics of heavy-ion collisions in the presence of strong magnetic fields and as testbeds for numerical codes.
The high collision energies reached at the LHC lead to significant production yields of light (anti-)nuclei and (hyper-)nuclei in proton–proton, proton–lead and, in particular, lead–lead collisions. The excellent particle identification capabilities of the ALICE apparatus, based on the specific energy loss in the Time Projection Chamber and the velocity information in the Time-Of-Flight detector, allow for the detection of these rarely produced particles. Further, the Inner Tracking System gives the possibility to separate primary nuclei from those coming from weak decay of heavier systems. One example of such a weak decay is the measurement of the (anti-)hypertriton decay to 3He + π− (3H̅e̅ + π+). The aforementioned capabilities of the ALICE apparatus offer the unique opportunity to search for exotica, like the bound state of a Λ and a neutron which would decay into a deuteron and a pion, or the bound state of two Λ’s. Results on the production of stable nuclei in Pb–Pb collisions at √sNN = 2.76 TeV are presented, and compared with thermal model predictions. We further present the current status of the searches, by their upper limits on the production yields, and compare the results to thermal and coalescence model expectations.
The Compressed Baryonic Matter (CBM) experiment will explore the phase diagram of strongly interacting matter in the region of high net baryonic densities. The matter at these extreme conditions will be produced and studied in heavy-ion collisions with a fixed target set-up.
The present work is dedicated to the main component of the CBM experiment - the Silicon Tracking System (STS). The STS comprises of 8 tracking stations with 1292 double sided silicon microstrip sensors. The STS has to enable the reconstruction of up to 1000 charged particle tracks per nucleus-nucleus interaction at the rate of up to 10 MHz, provide a momentum resolution of Δp/p =1%, and withstand the radiation load of up to 1 x 1014 neq/cm2 (neq — radiation dose of 1 MeV neutron equivalent). Self-triggering read-out electronics will be located on the periphery of the detecting planes, and connected to the sensors with low mass micro-cables.
During the R&D phase, as well as in the pre-series and series production phase, the characterization of the sensors, of the front-end electronics and of the complete detector modules has to be performed. It is evident that characterization of more than 1000 silicon microstrip sensors and later of complete detector modules is very time-consuming, and may even damage the objects if not performed carefully. One of the goals of this work was to develop a systematic procedure for the quality assurance for the double-sided silicon microstrip sensors. This includes static optical inspection and visual tests, passive electrical test (such as leakage current, bulk capacitance, inter-strip capacitance & resistances, bias resistance and coupling capacitance), radiation hardness and long-term stability. A strategy for the quality assurance of these sensors is presented, defining the various tests to be performed and the documentation of the results. The techniques and quality assurance criteria will be applied for the pre-series and series production.
With decreasing feature size and increase in functionality and structures, the classical mechanical probe approach for internal fault detection and functional testing faces increasing challenges. In the field of silicon based chips and sensors there is rarely any analysis on the topic of non-invasive or contact-less probing and characterization, despite the fact that the contact-less probing is becoming more and more important as the fabrication technologies become smaller and more susceptible to the parasitic impact of mechanical probes. The silicon micro-strip double sided sensors used in STS have a complex structure, such as 1024 metal electrodes, 2048 bias resistors, 2048 DC pads and 4098 AC pads for probing, several guard rings, and even more in the 6.2 cm x 6.2 cm prototype sensor. Photo-intrusive technique is the best solution for the characterization and investigation of crucial parameters related to the detector operation and its functionality. A photo-intrusive probing is a method in which a non-invasive pulsed laser of a desired wavelength is used to inject the photon into the bulk and resulting in electron-hole pairs (e-h). In a completely depleted silicon sensor the charge injected (or generated) by the pulsed laser beam could be detected as current and shall be used for characterization.
A non-invasive contact-less Laser Test System (LTS) was developed based on a pulsed laser to investigate properties of the silicon sensors. The set-up is able to inject charge locally and scan sensors(or detector modules) with a pulsed infra-red laser driven by a step motor. The LTS is designed to measure sensor response in an automatized procedure at several thousand positions across the sensor with focused infra-
red laser light (spot size = 12 μm , wavelength = 1060 nm). The duration (10 ns) and power (5 mW) of the laser pulses are selected such that the absorption of the laser light in the 300 μm thick silicon sensors produces a number of about 24000 electrons, which is similar to the charge created by the minimum ionizing particles (MIP) in these sensors. The set-up was used to developed characterization procedures to determine the charge sharing between strips, and to measure a qualitative uniformity of the sensor response over the whole active area. The prototype sensors which are tested with the set-up are small prototype sensors (256 strips, pitch = 50 μm on each side) and full-size detector modules (1024 strips/side and pitch = 58 μm). They are read-out using a self-triggering prototype read-out electronic ASIC called n-XYTER. Laser scans for amplitude response, charge sharing in the inter-strip region, and spot-size determination technique are reported. For the verification of the some design parameters, unique methods of determining coupling capacitance, and inter-strip capacitance have been developed. The modules were also tested with proton beams, and the charge sharing in the inter-strip region has been compared to the laser test results.